Conductive fluid sensor cable
A conductive fluid sensor cable capable of manufacture in long lengths comprising a flexible substrate, a pair of conductors, and a cover material arranged to allow a conductive fluid path between the conductors when conductive fluid contacts the cable.
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The present invention relates generally to detecting conductive fluid leaks, and more particularly to a conductive fluid sensor cable for use with a conductive fluid sensing system.
Water and other fluid leaks can cause significant damage to property and electronics if not detected and remediated in a timely manner. Various moisture and fluid sensors are available on the market, and generally include a pair of electrical probes that conduct current when both probes contact a continuous body of conducting fluid, such as undistilled water (water with dissolved salts and other ionic compounds, which is typical in tap water). The probes are connected to a conductive fluid sensor which drives a notification system such as an audio or visual indicator that indicates the presence or absence of conductive fluid across the probes. The notification system may also generate signal(s) that drive other equipment. For example, the notification system may drive a relay which turns off a water supply when conductive fluid is detected.
Some conductive fluid sensors extend the sensing probes using a length of cable that includes individual moisture sensors at various points along the cable. These cables are expensive to manufacture and typically must be terminated in a cable-side connector or stiffened termination on each end of the cable, and thus are generally available only in fixed predetermined lengths.
SUMMARY OF THE INVENTIONThe present invention conductive fluid sensor cable for use with a conductive fluid sensor that is inexpensive to manufacture, reliably detects conductive fluid when used in conjunction with a conductive fluid sensing system, can be cut to any desired length, is easy to install, and can be used with a variety of different conductive fluid sensing systems.
In embodiments, the conductive fluid sensor cable comprises a substrate having a first surface and extending in an extension direction, a pair of electrically isolated first and second conductors extending along the first surface of the substrate in the extension direction, and cover material disposed in direct contact with both the first and second conductors and arranged to allow fluid contact between the first and second conductors and conductive fluid when the conductive fluid contacts the cable. The substrate, conductors and cover material are adhered together to form the cable. Preferably, the substrate, conductors, cover material and adhesive are formed in flat layers. In an embodiment, the cable substrate, conductors, cover material and adhesive comprises flexible material, resulting in a flexible cable.
In an embodiment, the cover material is fluid-permeable material that allows conductive fluid to penetrate through the cover material to contact the first and second conductors and thereby form a conductive fluid path between the first and second conductors. Such fluid-permeable material may be wicking material that wicks the conductive fluid across the first and second conductors to form a conductive path between the conductors. In an embodiment, the wicking material swells when it absorbs fluid.
In an embodiment, the cover material is deposited on first portions of the first and second conductors, the cover material arranged to form void sections that expose second portions of the first and second conductors through, or around sections of, the deposited cover material, the void sections allowing formation of a conductive fluid path between the conductors when conductive fluid flows into the void sections. When implementing a cover comprising cover material arranged to form void sections, the cover material itself may be implemented with either fluid-permeable material or non-fluid-permeable material.
Embodiments of cables implemented in accordance with the invention may further be encased in wicking material.
A more complete appreciation of this invention, and many of the attendant advantages thereof, will be readily apparent as the same becomes better understood by reference to the following detailed description when considered in conjunction with the accompanying drawings in which like reference symbols indicate the same or similar components, wherein:
FIG. 3B_a is an enlarged plan view of a portion of the second embodiment cable of
FIG. 4B_a is an enlarged plan view of a portion of the third embodiment cable of
Turning now to the drawings,
In embodiments, the conductive fluid sensor cable 2 may be manufactured in long lengths, and when fabricated using flexible materials, may be conveniently stored on a spool 1 until ready for use, as illustrated in
In an embodiment, the substrate 11 is formed of a flexible material (i.e., material that is bendable without breaking) such as polyimide or polyester, fabric, etc. The flexible material may also be formed from a normally rigid material (such as, without limitation, FR-4) that is thinned down to a few tens of micrometers in thickness to gain sufficient flexibility to bend without breaking. In other embodiments, the substrate may be formed using a rigid material, such as, by way of example and not limitation, FR-2 or FR-4—in such case the cable 2 will not be flexible.
In an embodiment, cover layer 14 is formed using a fluid-permeable material that allows fluid to penetrate through the layer 14 from its top surface 14top through to its bottom surface 14bottom. In a preferred embodiment, the cover layer 14 comprises a wicking material having non-conductive, moisture-absorbing, moisture-permeable properties that exhibits capillary action, or wicking, in the presence of fluid to pull fluid across and through the material. Since different wicking materials absorb fluid at different rates, through deliberate selection of the particular wicking material used as the cover layer 14, one can implement a coarse form of control over the rate at which a conductive connection is formed across the conductors 13a, 13b in the presence of conductive fluid. In an embodiment, the cover layer 14 comprises wicking material formed of a fluid-absorbing material that swells or enlarges as it absorbs and retains fluid. The advantage of using such a swelling-type wicking material is that the wicking material is more likely to create fluid contact across the conductors 13a, 13b and maintain such fluid contact in the event that the wicking material is somewhat loosely formed across the conductors 13a, 13b. Additionally, depending on the type of swelling-type wicking material used, the rate at which a conductive connection forms between the conductors 13a, 13b in the presence of fluid may differ based on material type, providing an aspect of control over the reaction time of the conductive fluid sensing circuit. Without limitation, examples of suitable wicking materials include cotton, wool, rayon and other synthetic fabrics, braided materials, or other natural or synthetic absorbent or super absorbent materials, including fluid-permeable sleeves containing fluid-absorbing fluid-swelling material such as super absorbent gel or other material.
In an alternative embodiment, the cover layer 14 comprises a dielectric or other non-absorbing but fluid-permeable material such as a fluid-permeable film. In yet another alternative embodiment, the cover layer 14 comprises non-fluid-permeable material that is deposited in non-contiguous sections arranged to form voids (i.e., absence of cover material) therebetween and therethrough. For example, the cover layer material may be applied and arranged as a plurality of dots, stripes, stippled sections low-resolution that may or may not be fluid permeable and that are arranged to form void sections (i.e., absence of the material) that expose portions of the cable conductors 13a, 13b through the cover layer 14. As a specific example provided by way of illustration and not limitation, the cover layer may be formed by spraying a low-resolution coat of silicone rubber or other elastomer or sprayable dielectric (or even a B-stage adhesive that is later exposed to high heat or UV light for final cure), wherein the low-resolution coat comprises miniature dots arranged to form gaps or voids (i.e., absence of cover material 14) therebetween on the surface of the conductors 13a, 13b (as discussed below in reference to
The cover layer 14 serves multiple purposes: (1) it is formed to allow fluid to permeate the cover of the cable to enable formation of a conductive connection across the conductors; (2) it assists in securing the conductors 13a, 13b in place within the structure of the cable 10 by forming, in conjunction with the adhesive layer 12, a fluid-permeable secured cover over the conductors 13a, 13b; (3) when such cover layer 14 comprises wicking material, it absorbs water or other conductive fluid and via capillary action wicks the fluid across the conductors 13a, 13b to more reliably ensure that a resistive connection is formed for the conductive fluid sensor 1 to detect; (4) the selection of the particular fluid-permeable material can be used as a coarse mechanical control over the rate at which the resistive connection is formed (either assisting in rapid connection or slowing down the formation of the resistive connection); (5) it assists in protecting the conductive layer 13 and adhesive layer 12 from environmental elements; and (6) in the absence of fluid it electrically isolates the conductors 13a, 13b from objects that come in contact with the exposed surface 14top of the cover layer 14, thereby assisting in protecting people and objects from unintentionally causing a short or forming a resistive connection across the conductors 13a, 13b when such people or objects contact the cable 10.
In an embodiment, the cover layer 14 comprises a single unit (i.e., a single piece taken alone, or multiple pieces joined together to form a single piece) of fluid-permeable material that preferably covers all, or substantially all, of the first surface 13 top of the conductors 13a, 13b, and all, or substantially all, of the portions 12d of the first surface 12 top of the adhesive layer 12 that are not covered by the conductors 13a, 13b. Such an embodiment is depicted in
In an embodiment, the layers 11, 12, 13 and 14 are arranged in the order illustrated in
In an embodiment, as best seen in
In the embodiment shown in
Adhesive layer 42 is disposed over the conductive layer 43. FIG. 4B_a is an enlarged view of portion 48 of
In alternative embodiments (not shown), the adhesive sections 35 may comprise a plurality of stripes arranged on the substrate 41 diagonally to the extension direction of the cable 30. Other arrangements may include, without limitation formation on the substrate 41 of crisscrossed stripes, or other non-contiguous shapes such as dots, stipples, spots, dashes, circles, rectangles, etc., so long as the adhesive 42 is formed on the substrate 41 such that the sections 45, either individually or in conjunction with other sections 45, adhere to portions 46 of the top of conductors 43a, 43b, and to portions 47 of the top of substrate 41, and wherein the top surface 42 top adheres to the underside 44 bottom of cover layer 44 in a manner so as to secure the conductors 33a, 33a in place between the substrate 11 and cover layer 34.
In the embodiment shown in
It is to be understood that any of the cover layers 54, 64 or 74 described in
Adhesive layer 82 may comprise a continuous body of adhesive on which cover layer 84 and portions of the threaded conductors 83a, 83b are disposed. In an alternative embodiment (not shown in
In an embodiment, portions 85 of the conductors 83a, 83b are exposed on the external surface of the cable 80 while other portions of the conductors 83a, 83b are protected within or under the exposed surface of the cover layer 84. The size of the exposed portions 85 of the conductors 83a, 83b depends on the stitch size and/or weave or stitch pattern. In an alternative embodiment, illustrated in
Notably, each cable embodiment 10, 30, 40, . . . , 90 illustrated in the figures is shown, for convenience of understanding, with exaggerated dimensions. In particular, the thicknesses of the individual layers relative to the width in each depicted embodiment 10, 30, 40, . . . 90, is exaggerated in order to be able to illustrate the construction of the respective cable. In practice, each cable embodiment will typically be on the order of a few millimeters wide, a hundred or more micrometers thick, and a few centimeters up to meters long. In an illustrative embodiment, for example, the cable 10 may have example dimensions as follows:
with spacing between conductors 3 mm.
Various materials may be used for each of the substrate, base, adhesive, conductor, and wicking/cover layers in each of the embodiments 10, 30, 40 . . . , 90 of cable 2. The substrate/support/base layer(s) may be implemented, by way of example and not limitation, using dielectric material such as biaxially-oriented polyethylene terephthalate (BoPET), polyethylene terephthalate (PET), polyethylene naphthalate (PEN) or other polyester or polyamide films or electrically insulative materials. The substrate/support/base layer(s) may also be implemented using wicking material such as cloth, fabric, mesh, etc. constructed with natural or synthetic non-conductive fibers. Preferably, the substrate is flexible, as discussed herein; alternatively, the substrate may be rigid or semi-rigid, for example using materials such as FR-2 or FR-4.
Examples of adhesive material include, without limitation, non-conductive resins, adhesives and/or epoxies. In a preferred embodiment, the adhesive is a B-stage adhesive that can be applied by dispensing or printing and then partially cured using a latent (low reactivity) curing agent so that it remains in a bondable state. Once the components (e.g., substrate, conductors, cover layer) are placed, the B-stage adhesive is exposed to high heat or UV light for final cure. In an embodiment, the combination of substrate and adhesive layers is pre-manufactured adhesive flexible BoPET tape, such as Mylar®, Melinex, and Hostaphan adhesive tapes. It is to be understood that the adhesive is characterized by electrical insulative properties to prevent current flow between the conductors through the adhesive. Further, in embodiments where the conductors may have portions that directly contact the substrate, it is to be understood that the substrate itself must accordingly be electrically insulative in order to prevent current flow between the conductors through the substrate.
The conductive layer, or conductors, are implemented using conductive material such as, but not limited to, silver, silver ink, copper, tin-plated copper, gold, nickel, aluminum, etc. The conductors in each of the embodiments 10, 20, . . . , 90 are preferably flat conductive foil (which may include an adhesive tape, flat wire, or printed conductive ink, but could also be round wire, conductive thread, conductive traces, etc.
In an embodiment, the substrate and conductive layer together comprises flat flexible cable (FFC) manufactured using BoPET tape and flat foil laminated or adhered thereon. Wicking/cover layer is adhered to the FFC using a B-Stage adhesive. Such construction supports a very inexpensive manufacturing process, a durable cable, and facilitates accurate reliability by water sensors connected to the cable.
In operation, each cable embodiment 10, 20, . . . , 90 serves as a conductive fluid sensor cable (to be operated in conjunction with a conductive fluid sensing circuit) by exposing (through a fluid-permeable layer or a cover layer arranged to form voids therethrough) electrically isolated conductors embedded within the cable to the environment in which the cable is installed. When conductive fluid comes into contact with the cable 102, the cover layer (achieved via fluid-permeable material and/or leaving voids between the layer material) allows fluid to permeate the layer. When the cover layer comprises wicking material, the wicking material absorbs the fluid, pulling it through the wicking material to ensure that the fluid forms a conductive fluid body that forms a resistive connection between the otherwise isolated (i.e., in the absence of fluid) conductors. The wicking material, through capillary action, enhances the likelihood that the fluid will span both conductors to ensure detection of the presence of fluid. The conductors of the cable 102 connect to a conductive fluid sensing circuit (discussed hereinafter) which detects and indicates the presence of conductive fluid based on current flow through a resistive connection formed by conductive fluid across the conductors of the cable 102.
Referring to
The switch circuit shown in
Connector 123 may be implemented in various ways to receive, retain and electrically connect the cable 102 to the conductive fluid sensing circuit 121. Preferably, the connector 123 allows a cable 102 to be inserted, and then later removed, to allow the cable to be easily installed and replaced without needing to open the housing of the conductive fluid sensing circuit 121 and/or solder the connections.
In an embodiment the connector 123 comprises a zero-insertion force (ZIF) connector that is configured to receive an FFC cable. In such embodiment, the terminating end of the cable to be inserted into the ZIF connector will typically require a stiffener added to the end of the cable.
In a preferred embodiment, the connector 123 is integrated into the circuitry and housing of the conductive fluid sensing circuit 121 and includes features that allow an end of a cable 20 to be inserted into and retained by the connector 123 whereby the connector forms an electrical connection between conductors 103a, 103b of the cable 102 and the connector input nodes 122a, 122b of the conductive fluid sensing circuit 121. Preferably, the connector 123 is self-contained and requires no external crimping tool to electrically connect the cable 102 to the circuit 121. Preferably, the connector 123 also does not require any additional termination structure or support on the end of the cable—for example, the connector connects to a raw end of a cable wherein the raw end of the cable does not include any additional stiffener, connector, or other structure.
As best seen in
The connector 200 also comprises a retention cover 211 having attached or molded on its underside a molded compression block 212 that includes cavities or indentations 213 positioned to substantially conform to the respective positions of the piercing protrusions 207 and retainer protrusions 210 in the channel 202 when the retention cover 211 is property seated over the channel 202. In an embodiment, the retention cover 211 is attached along the upper edge of one sidewall 203a of the channel 202 by a hinge 213, which allows the cover 211 to be rotated from an open position (
Thus, with reference to
In alternative embodiments, the retention cover 211 is a modular piece that is snapped on and held by retention clips.
Referring again to
Actuation of any of the devices 128, 129, 130, 131 may be effectuated directly by direct electrical connection of node 124 to an input of a respective actuation device 128, 129, 130, 131. Alternatively, actuation may be effectuated indirectly by way of one or more intermediate circuits, electrical devices, controls and/or network communication(s). For example, in
Processor 120 may further be configured to control one or more transmission module(s) 132 in order to transmit an alert such as a text message, a phone call, an email, etc. Transmission module(s) 132 send information indicating the presence (or lack of presence) of conductive fluid across the conductors 103a, 103b of the conductive fluid sensor cable 102, and/or current and/or resistance measurements base thereon. In embodiments, the transmission module(s) 132 comprise one or more of a cellular modem and antenna, an IEEE 802.11 b/g/n WiFi module with antenna, or an RF transceiver and antenna that implements transmission protocols in other RF bands and corresponding suitable transmission protocols (e.g., 433 MHz serial protocol, Bluetooth, Zigbee, etc.). The conductive fluid sensing system 100 may further include additional circuitry, such as but not limited to a Subscriber Identity Module (SIM) card 135 for use with a cellular transmission module, a GPS module 133 for detection and use or transmission of GPS coordinates, other sensors 134 such as temperature, humidity sensors, etc. The system 100 includes one or more power sources 136. In an embodiment, the system 100 is self-powered using one or more battery source(s). Alternatively, the power source 136 may comprise an AC/DC converter and connect to AC power via an AC power outlet connected to the power grid or other AC source.
With reference to
Although this preferred embodiment of the present invention has been disclosed for illustrative purposes, those skilled in the art will appreciate that various modifications, additions and substitutions are possible, without departing from the scope and spirit of the invention as disclosed in the accompanying claims. For example, it should be understood that the term “connected”, as used in both the specification and the claims includes any direct or indirect electrical connection herein known or hereinafter developed. It is also possible that other benefits or uses of the currently disclosed invention will become apparent over time.
Claims
1. A conductive fluid sensor cable, comprising: a substrate having an adhesive surface and extending in an extension direction; a material overlaying and substantially covering the substrate adhesive surface; and first and second uninsulated flat conductors, each having a first surface and an opposite-facing second surface, each laterally positioned in electrical isolation from one another along a single layer between the substrate and the material, and each extending along the adhesive surface of the substrate in the extension direction; wherein the substrate, the first and second uninsulated flat conductors and the material are laminated together by way of at the substrate adhesive surface, wherein the respective first surfaces of the first and second uninsulated flat conductors adhere to the adhesive surface of the substrate and the material adheres to one or more exposed areas of the adhesive surface of the substrate, thereby forming a laminated structure that seals the first and second uninsulated flat conductors between the substrate and the material and secures the first and second uninsulated flat conductors in a fixed position within the laminated structure, wherein the material directly covers and contacts the respective second surfaces of the first and second uninsulated flat conductors; wherein the material comprises a plurality of microdots disposed over the adhesive surface of the substrate and the respective second surfaces of the first and second uninsulated flat conductors; the plurality of microdots form voids therebetween and, in the presence of conductive fluid, said voids permits conductive fluid to penetrate the material to form a conductive fluid path between the first and second uninsulated flat conductors.
2. The cable of claim 1, therein the laminated structure is flexible.
3. The cable of claim 1, wherein the laminated structure is characterized by a total thickness of less than 0.2 mm.
4. The cable of claim 1, wherein the substrate comprises a fluid-permeable material.
5. The cable of claim 1, wherein the substrate adhesive surface comprises a B-stage adhesive.
6. The cable of claim 1, wherein the substrate comprises a polyester material.
7. The cable of claim 1, wherein the substrate comprises a polyimide material.
8. The cable of claim 1, wherein the substrate is a tape having a polyester film with an adhesive applied thereon.
9. The cable of claim 8, wherein the tape adhesive is a B-stage adhesive.
10. The cable of claim 1, wherein the substrate is a tape having a polyimide film with an adhesive applied thereon.
11. The cable of claim 10, wherein the tape adhesive is a B-stage adhesive.
12. The cable of claim 1, the first and second uninsulated flat conductors electrically connected to first and second inputs of a conductive fluid sensing circuit, the sensing circuit generating a signal indicative of a presence or a lack of presence of the conductive fluid across the first and second uninsulated flat conductors based on amount of current or resistance detected between the sensing circuit first and second inputs.
13. The cable of claim 1, the first and second uninsulated flat conductors electrically connected to first and second connector nodes of a cable connector, the cable connector configured to connect to a corresponding fluid sensing circuit connector of a fluid sensing circuit, the fluid sensing circuit connector connecting the first and the second connector nodes of the cable connector to respective first and second sensing nodes of the fluid sensing circuit.
14. The cable of claim 13, the cable connector connected to the fluid sensing circuit connector of the fluid sensing circuit, the fluid sensing circuit generating a signal indicative of a presence or a lack of presence of the conductive fluid across the first and second uninsulated flat conductors based on a value of current or resistance detected between the first and second sensing nodes of the fluid sensing circuit.
15. The cable of claim 1, wherein the substrate adhesive surface comprises a continuous body of adhesive.
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Type: Grant
Filed: Jul 18, 2019
Date of Patent: Jan 26, 2021
Patent Publication Number: 20200393321
Assignee: PICA Product Development, LLC (Derry, NH)
Inventors: Richard Shevelow (Estero, FL), Scott Stapleford (Londonderry, NH), Patrick Walsh (Allenstown, NH)
Primary Examiner: Daniel S Larkin
Assistant Examiner: Anthony W Megna Fuentes
Application Number: 16/516,077
International Classification: G01M 3/16 (20060101); H01B 7/04 (20060101);